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Lettuce (Lactuca sativa variety Salanova) production in decoupled aquaponic systems: Same yield and similar quality as in conventional hydroponic systems but drastically reduced greenhouse gas emissions by saving inorganic fertilizer

机译:解耦的水培系统中的生菜(莴苣萨拉诺瓦品种)生产:与传统水培系统产量和质量相似但通过节省无机肥料大大减少了温室气体排放

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摘要

Decoupled aquaponic systems have the potential to become one of the most effective sustainable production systems for the combined production of animal protein and plant crops. Here, recirculating aquaculture systems for fish production are combined with hydroponics for soilless plant production thereby recycling dissolved nutrients derived from metabolism of the fish. The aim of the present study was to characterize hydroponic lettuce production using conventional nutrient solution in comparison with decoupled aquaponics using the nutrient rich fish water as basis for the nutrient solution being supplemented by missing nutrients. In addition, one aquaponic treatment became disinfected in order to assess any occurring advantage of the aquaponics derived fish water. For evaluation the temperature, electrical conductivity, pH, and the mineral composition of the nutrient solution, as well as colony forming units in the fish water were monitored. Additionally, plant growth (fresh and dry weight, number and area of leaves) and quality parameters of lettuce leaves (nitrate, mineral content, phenolic compounds) were examined. Carbon sources and microorganisms derived from fish water seem to have neither beneficial nor detrimental effects on plant growth in this study. Except for some differences in the mineral content of the lettuce leaves, all other quality parameters were not significantly different. The use of aquaponic fish water saved 62.8% mineral fertilizer and fully substituted the required water for the nutrient solution in comparison to the control. Additionally, the reduced fertilizer demand using decoupled aquaponics can contribute to reduce greenhouse gas emissions of an annual lettuce production site per ha by 72% due to saving the energy for fertilizer production. This study clearly demonstrates the huge potential of the innovative approach of decoupled aquaponics to foster the transformation of our conventional agriculture towards sustainable production systems saving resources and minimizing emissions.
机译:解耦的共生系统有可能成为动物蛋白和植物作物联合生产的最有效的可持续生产系统之一。在这里,用于鱼类生产的循环水产养殖系统与用于无土植物生产的水培法相结合,从而回收了来自鱼类代谢的溶解养分。本研究的目的是与使用营养丰富的鱼水作为营养液补充营养成分不足的基础的解耦共养体系相比较,来表征使用常规营养液进行水培生菜的特性。此外,对一种水培处理方法进行了消毒,以评估由水培方法产生的鱼水的任何潜在优势。为了评估温度,电导率,pH,营养液的矿物质组成以及鱼水中的菌落形成单位,都进行了监测。此外,还检查了植物生长(生鲜和干重,叶片的数量和面积)和莴苣叶片的质量参数(硝酸盐,矿物质含量,酚类化合物)。在这项研究中,鱼水中的碳源和微生物似乎对植物的生长既没有好处,也没有有害作用。除了生菜叶片的矿物质含量存在一些差异外,所有其他质量参数均无显着差异。与对照组相比,使用水生鱼水可节省62.8%的矿物肥料,并完全用所需的水代替营养液。此外,由于节省了化肥生产的能源,使用解耦的共生酶减少的化肥需求可以使每年生菜生产场所的每公顷温室气体排放量减少72%。这项研究清楚地证明了脱养共养素的创新方法的巨大潜力,可以促进我们的常规农业向可持续生产系统的转变,从而节省资源并减少排放。

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